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Updated: Jul 27, 2026

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
The cellular pharmacology of oxaliplatin resistance
Abstract:
Oxaliplatin is a third generation platinum compound that differs from cisplatin and carboplatin in having a broader spectrum of antitumour activity. Molecular studies suggest that oxaliplatin adducts are recognised and processed differently than those produced by the earlier generation Pt-containing drugs. We report here studies on the kinetics of the development of oxaliplatin resistance, and the changes in the cellular pharmacology of oxaliplatin that accompany the emergence of the resistant phenotype in five parental human tumour cell lines and their sub-lines selected for acquired oxaliplatin resistance in vitro. During selection, resistance did not substantially increase until after at least six cycles of oxaliplatin treatment. Oxaliplatin demonstrated schedule-dependency with a 1-h exposure being substantially less cytotoxic than a continuous exposure. Whole cell uptake was linear with concentration, but uptake in the resistant cells averaged only 27+/-10 S.D.% of that in the sensitive cells. Pt accumulation in DNA was markedly reduced in four of the five resistant cell lines, but this did not correlate with either IC(50) or total cellular accumulation. Four of the five resistant sub-lines also demonstrated increased tolerance to adducts in DNA that ranged from 3.1 to 7.6-fold. We conclude that development of acquired resistance to oxaliplatin is accompanied by independent defects in both whole cell uptake and in adduct formation.
Insights
Acquired resistance to oxaliplatin (a platinum compound) develops after prolonged treatment. This resistance involves reduced drug uptake and impaired DNA adduct formation, impacting its anticancer efficacy.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Oxaliplatin, a third-generation platinum compound, exhibits broader antitumour activity than cisplatin and carboplatin.
- Molecular evidence suggests distinct processing of oxaliplatin-DNA adducts compared to earlier platinum drugs.
Purpose of the Study:
- To investigate the kinetics of acquired oxaliplatin resistance development.
- To characterize cellular pharmacology changes associated with oxaliplatin resistance in human tumor cell lines.
Main Methods:
- In vitro selection of five human tumor cell lines for acquired oxaliplatin resistance.
- Assessment of oxaliplatin cytotoxicity, schedule-dependency, cellular uptake, and DNA adduct formation in resistant and sensitive cells.
Main Results:
- Resistance emerged after at least six cycles of oxaliplatin treatment, showing schedule-dependency.
- Resistant cells exhibited significantly reduced whole-cell uptake (27% of sensitive cells) and decreased platinum accumulation in DNA.
- Four of five resistant lines showed 3.1 to 7.6-fold increased tolerance to DNA adducts.
Conclusions:
- Acquired resistance to oxaliplatin is associated with independent defects in cellular drug uptake and DNA adduct formation.
- These cellular pharmacology alterations contribute to the reduced efficacy of oxaliplatin in resistant tumor cells.
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